Envisioning Contestability Loops: Evaluating the Agonistic Arena as a Generative Metaphor for Public AI

IF 1.8 2区 社会学 0 HUMANITIES, MULTIDISCIPLINARY
Kars Alfrink , Ianus Keller , Mireia Yurrita Semperena , Denis Bulygin , Gerd Kortuem , Neelke Doorn
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引用次数: 0

Abstract

Public sector organizations increasingly use artificial intelligence to augment, support, and automate decision-making. However, such public AI can potentially infringe on citizens’ right to autonomy. Contestability is a system quality that protects against this by ensuring systems are open and responsive to disputes throughout their life cycle. While a growing body of work is investigating contestable AI by design, little of this knowledge has so far been evaluated with practitioners. To make explicit the guiding ideas underpinning contestable AI research, we construct the generative metaphor of the Agonistic Arena, inspired by the political theory of agonistic pluralism. Combining this metaphor and current contestable AI guidelines, we develop an infographic supporting the early-stage concept design of public AI system contestability mechanisms. We evaluate this infographic in five workshops paired with focus groups with a total of 18 practitioners, yielding ten concept designs. Our findings outline the mechanisms for contestability derived from these concept designs. Building on these findings, we subsequently evaluate the efficacy of the Agonistic Arena as a generative metaphor for the design of public AI and identify two competing metaphors at play in this space: the Black Box and the Sovereign.

设想可竞争性循环:评估作为公共人工智能生成隐喻的争论场
公共部门组织越来越多地使用人工智能来增强、支持和自动化决策。然而,这种公共人工智能可能会侵犯公民的自主权。可竞争性是一种系统质量,通过确保系统在其整个生命周期内开放并对争议做出响应,来防止这种情况的发生。虽然越来越多的工作都在研究可竞争的人工智能设计,但迄今为止,这些知识很少经过实践者的评估。为了明确可竞争人工智能研究的指导思想,我们受多元争论政治理论的启发,构建了 "争论场"(Agonistic Arena)这一生成性隐喻。结合这一隐喻和当前的可竞赛人工智能指南,我们制作了一张信息图,支持公共人工智能系统可竞赛机制的早期概念设计。我们在五次研讨会上对该信息图进行了评估,并与共 18 名从业人员组成的焦点小组进行了讨论,最终产生了十种概念设计。我们的研究结果概述了从这些概念设计中得出的可竞争性机制。在这些发现的基础上,我们随后评估了 "争论场 "作为公共人工智能设计隐喻的有效性,并确定了在这一领域中两个相互竞争的隐喻:"黑箱 "和 "主权"。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.20
自引率
5.00%
发文量
16
审稿时长
16 weeks
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